AN ELECTRIC VEHICLE WITH IMPROVED STRUCTURE
An electric vehicle has a frame configured with a cell module , a front anti-crash module and a rear module, each having a reticular structure formed by high-strength steel arms, welded together and each having a hollow structure with a quadrangular cross-section. A front axle unit and a rear axle unit each including an electric drive motor are associated with the front frame module and the rear frame module. The frame has a floor, which acts as a container for a battery pack for the electric drive motors of the vehicle.
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The present invention relates to electric vehicles.
A preferred application of the invention relates to electric vehicles for transporting people of the van or pick-up type. However, the disclosures at the basis of the present invention are of general application.
The invention relates, in particular, to an electric vehicle of the type comprising:
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- a frame, including a main cell module, a front anti-crash module rigidly connected to a front portion of the main cell module, and a rear frame module rigidly connected to a rear portion of the main cell module,
- wherein each of said frame modules consists of a reticular structure formed by high-strength steel arms, welded together, each arm having a hollow structure with a quadrangular cross-section,
- a front axle unit and a rear axle unit, each comprising:
- an axle frame rigidly connected to a respective front or rear frame module,
- an upper pivoting arm and a lower pivoting arm for each wheel of the axle unit, mounted hinged to the frame of the axle unit and carrying a respective wheel support in a rotatable way around a steering axis,
- a wheel hub rotatably supported by each wheel support,
- an electric motor unit carried by the axle frame and connected by means of transmission members to the wheel hubs of the two wheel supports, and
- a device for activating the steering of the wheels, carried by the frame of the axle unit,
- said vehicle further comprising a floor rigidly connected to two lower side longitudinal members of said main cell module, and configured to act as a structural element of the vehicle frame, and also as a container for the battery pack, for the electrical power supply of said electric motor assemblies associated with the two axle units.
The Applicant is the owner of various patents and patent applications (see, for example, WO2015/155697 A1, WO2015/145285, WO2016/055873 A1, WO2016/055874 A1, WO2018/065946 A1) relating to an electric vehicle of the type indicated above. The Applicant's continuous research and experience in relation to the development of this vehicle have led to a breakthrough in the field of small electric vehicles, usable as city cars, or as small commercial vehicles, minivans or mini pick-ups.
A first objective that the Applicant intends to achieve is that of a drastic reduction of the investment costs necessary to implement a series production of vehicles of this type. The conventional technique used in the construction of motor-vehicle bodies and their sub-assemblies is very complex and requires the provision of expensive production equipment. It follows that for each new model to be introduced into production it is necessary to envisage a significant economic investment, which often constitutes a limit for vehicle manufacturers to the possibility of reacting promptly to market demands.
The structure of the frame of the electric vehicle, which was developed by the Applicant, and which was the subject of the patent documents identified above, allows drastic reduction of the costs of the production equipment of the motor-vehicle. This was achieved in the first place by replacing the traditional body, consisting of pressed metal sheet elements welded together, with a reticular frame having the configuration described above. Production in series of a frame of this type does not require the preparation of complex, bulky and expensive production structures.
Furthermore, configuration of the vehicle frame developed by the Applicant also has the advantage of being able to be configured not only in such a way as to easily pass all the crash tests required by regulations, but also to give the entire structure a degree of safety and of very high impact energy absorption capacity.
In continuing his research and development activity, the Applicant has again identified the possibility of further improvements in terms of simplifying the construction of the vehicle and in terms of the resistance characteristics and the capacity of absorbing impact energy of the vehicle structure.
More generally, an additional objective that the Applicant intends to achieve is that of further simplifying the construction of the vehicle, maintaining and preferably improving the level of safety that the vehicle achieves in terms of protection of the driver and passengers in the event of a crash.
An additional objective of the Applicant is that of producing a new electric vehicle configuration, usable particularly as a minivan or mini pick-up. In particular, the Applicant intends to provide a new vehicle configuration of this type, which can exploit in a particularly efficient way an arrangement of photovoltaic cells arranged on the outer surfaces of the vehicle, and usable for recharging the battery pack of the electric vehicle.
Yet another problem that the Applicant intends to solve is that of drastically improving the efficiency of the recharging process of the battery pack of the electric vehicle, both in the recharging phase by an outer power supply network, and in the recharging step while the vehicle is running, by means of a braking energy recovery system, and in a recharging step by photovoltaic cells with which the electric vehicle is equipped.
Object of the InventionIn view of the above, a first object of the invention is to further improve the vehicle previously proposed by the same Applicant, making its construction even simpler and cheaper.
An additional object of the invention is to produce a vehicle with a high capacity for absorbing impact energy and with a high degree of protection for the driver and passengers in the event of collisions.
An additional specific object of the present invention is to drastically simplify not only the construction of the vehicle frame, but also that of additional components, such as the suspension elements and the doors, consequently reducing the investment costs necessary to prepare the corresponding production.
An additional object of the invention is to propose a new electric vehicle configuration of the type indicated above, usable in particular for vehicles of the van or pick-up class, wherein it is possible to provide an extensive and—at the same time—efficient use of arrays of photovoltaic cells that can be used to recharge the vehicle battery pack.
An additional object of the invention is to propose a battery pack recharging system with the aid of photovoltaic panels that allows active balancing of the battery pack.
Finally, yet another object, no less important than the previous ones, that the present invention aims to achieve is to drastically improve the efficiency and duration of the battery pack by means of its dynamic reconfiguration during vehicle use.
SUMMARY OF THE INVENTIONIn view of achieving one or more of the aforesaid objects, the present invention relates to an electric vehicle having all the characteristics disclosed at the beginning of this description and also characterized in that:
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- said upper pivoting arm and said lower pivoting arm associated with each wheel each have a main body consisting of elements obtained from high-resistance steel tubes cut by laser cutting and welded together, with an upper main wall and a lower main wall, both triangular in shape, parallel and spaced apart, defining a base side of the triangular configuration at the ends of which two horizontal bushings are welded coaxial with each other, for the articulated connection to the frame of the respective axle unit, and with an outer tip of the triangle configuration to which a vertical axis bushing is welded for the articulated connection of the wheel support around the steering axis,
also the wheel support, connected to said upper pivoting arm and to said lower pivoting arm, has a main body consisting of tubular members in high resistance steel welded together,
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- a cylindrical ring for the rotatable support of the wheel hub is welded to said main body of the wheel support, and
- an upper attachment and a lower attachment are welded to said main body of the wheel support, also made of high-strength steel tubes and welded together, intended to receive articulated supports for the rotatable connection to the upper and lower pivoting arms around said steering axis.
Thanks to the aforesaid characteristics, the structure of the suspension elements, consisting of the upper arm and the lower arm carrying each wheel support, and the wheel support, is also drastically simplified.
Another characteristic of the invention lies in the fact that the aforesaid floor also acting as a container for the battery pack (BP) has a structure including a lower container body and an upper container body having peripheral edges rigidly connected to each other,
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- wherein each of said lower and upper container bodies is formed by two metal sheet panels parallel to each other and spaced apart, shaped by cutting and bending, so as to present a main bottom wall surrounded by two side walls and two end walls,
- wherein one or both of the two metal sheet panels of each container body has an ordered distribution of imprints, which act both as spacer elements between the two panels, and as stiffening elements, and
- wherein the space between the two panels of each of said lower and upper container bodies acts as an insulating chamber, and may be filled with insulating material also having the function of reducing vibrations.
The structure of the floor of the vehicle according to the invention is, therefore, such as not to require any molding operation and consequently does not require the preparation of corresponding equipment. Each of the sheet metal panels is obtained starting from a semi-finished product obtained by a cutting operation and then brought into the final configuration by folding operations. The impressions acting as spacer elements are preliminarily made in the corresponding panel with equipment that can be greatly simplified.
Still according to an additional characteristic of the invention, the aforesaid front frame module includes longitudinal beams for absorbing impact energy, each consisting of an arm of the reticular structure, projecting forwards, having a hollow body with a quadrangular cross-section, in such a way as to have four longitudinal edges, and in that each of said longitudinal beams has a series of openings for controlling the impact deformation, formed on some or all of the aforesaid longitudinal edges in spaced apart positions, said openings presenting a decreasing amplitude from the front end of the beam towards the rear end, so as to induce a progressive deformation of the beam following a front impact, starting from the front end towards the rear end.
According to an additional characteristic, the vehicle comprises at least two front doors, articulated to the cell module of the vehicle frame, each comprising a door frame having opposite faces covered by an inner door structure and an outer door structure, wherein the door frame includes a reticular structure similar to that of the aforesaid frame modules, formed by high-strength steel arms, welded together, each arm having a hollow structure with a quadrangular cross-section, wherein said arms constituting the door frame include at least one front upright, and one rear upright, which are rigidly connected to each other by an upper cross-member, a lower cross-member and a diagonal arm, wherein each door includes a window frame defined by auxiliary elements substantially forming an arch, having the ends rigidly connected to said upper cross-member of the door frame, and wherein the inner door structure and the outer door structure are constituted by steel sheet panels rigidly connected on opposite sides to said door frame, and including respective window frames in a single piece, which clamp together the aforesaid arch connected to the upper cross-member of the door frame.
Thanks to the characteristics indicated above, the construction of the vehicle doors is radically simplified, while - at the same time - the diagonal arm forming part of the door frame constitutes an important protection for the safety of the driver and passengers in the event of side impacts.
According to an additional aspect, the invention relates to an electric vehicle of the type described above, characterized in that:
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- the vehicle frame has a configuration for a pick-up or van including a superstructure formed by a front roll-bar, a rear roll-bar and two upper side longitudinal members and in that:
- said superstructure supports:
- an upper panel of photovoltaic cells serving as a roof,
- two side panels of photovoltaic cells covering the two sides of said superstructure, and
- a rear panel of photovoltaic cells covering the rear frame of said superstructure, and
- wherein the aforesaid side panels and the aforesaid rear panel are movable between a lowered position, wherein the aforesaid panels cover the respective sides of said superstructure, so as to define a closed space, and a raised position, wherein the panels are rotated upward around one of their upper horizontal edges.
In one embodiment, in their raised position the side panels and the rear panel are arranged to slide under the roof panel.
Furthermore, in one example, the vehicle carries auxiliary panels of photovoltaic cells, which are arranged stationary on the sides and rear of the vehicle, below the aforesaid superstructure.
According to another characteristic, in each panel of photovoltaic cells, the cells are incorporated in a layered laminar structure, including an outermost layer comprising one or more layers of PET with a UV or ECTFE coating, two layers of a thermoplastic polyolefin material, above and below the cells, to encapsulate the cells, with a rear layer of structural glass fiber, which replaces the solutions based on a rear layer of PET with UV coating.
According to another preferred characteristic, each panel of photovoltaic cells has an ordered distribution in rows and columns of photovoltaic cells, separated by cell-free strips or zones, and in that in at least some of the intersections between the said cell-free strips or zones reflecting devices or LED light sources are arranged, configured to display—as an assembly—passive colored or reflective or active writings and/or logos through the LED sources.
According to another aspect, the invention comprises one or more outer surfaces covered by one or more panels of photovoltaic cells connected to a recharging circuit of the battery pack, which powers the electric drive motors of the vehicle, wherein:
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- said battery pack comprises a plurality of battery modules or partitions connected in series with each other, so that the voltage across the battery pack (for example 48V or 120V or 360V, or 420V) is the sum of the voltages across the individual battery modules or partitions (for example, 24V or 30V or 60V, or more specifically at a voltage submultiple of the voltage of the entire battery pack),
- said recharging circuit comprises a switching circuit configured to connect one or more groups or panels of said photovoltaic cells, selectively to any of said battery modules or partitions in such a way that each battery partition module is supplied with current at the supply voltage of the single battery module-partition, (for example 24V, or more specifically, at a voltage submultiple of the voltage of the entire battery pack),
- each photovoltaic cell or each group or panel of photovoltaic cells is connected to said switching circuit by means of a DC/DC converter, which carries the current from the supply voltage of the cell (for example, between 3 V and 30 V) to the supply voltage of the single battery module (e.g. 24 V or more specifically at a voltage submultiple of the voltage of the entire battery pack), which is a submultiple of the voltage of the entire battery pack.
Thanks to this characteristic, the circuit components are simplified and cheaper, the efficiency of the charging process is improved, and the invention also allows application of active balancing of the pack partitions using photovoltaic cells.
In the preferred embodiment, a Battery Management System is associated with said battery pack, designed to control the state of charge of the individual battery modules, and an electronic control and processing unit, which is configured and programmed to control the aforesaid switching circuit depending on the state of charge of the individual battery modules, in such a way as to actively balance the battery module that is being recharged, in order to maintain a substantially uniform state of charge of the various battery modules.
Thanks to the aforesaid characteristic, the invention therefore allows an “active” balancing of the battery pack charge through photovoltaic cells.
In one example, each DC/DC converter has a first pole and a second pole at its output, and said switching circuit comprises a plurality of switches each designed to connect one of the two poles of a respective battery module with all the first output poles of the DC/DC converters or with all the second output poles of the DC/DC converters.
In a variant, which eliminates the risk that the aforesaid switches may be in a combination of operating states that gives rise to a short circuit, each DC/DC converter has a first pole and a second pole at its output, the switching circuit comprises a plurality of galvanic isolation circuits, each having two input heads and two output heads, the two output heads of each galvanic isolation circuit are connected to the two poles of a respective battery module, and the two input heads of each galvanic isolation circuit are connected one to all the first output poles of said DC/DC converters and the other to all the second output poles of said DC/DC converters.
Also in the case of this second example, the battery pack is associated with a Battery Management System designed to control the state of charge of the individual battery modules, and an electronic control and processing unit, which is configured and programmed to control the aforesaid galvanic isolation circuits according to the state of charge of the individual battery modules, in such a way as to dynamically vary the battery modules that are being recharged, in order to balance the state of charge of the different battery modules.
According to another aspect, a Battery Management System is associated with the battery pack, configured to control the state of charge of the battery pack, and communicates with the inverter in such a way as to regulate the level of regenerative braking and, therefore, the flow of energy towards the battery, and possibly disable the regenerative braking when a battery charge state above a predefined level is detected.
According to another aspect, the invention also relates to the circuit for recharging the vehicle battery pack by an external power supply network or, while the vehicle is running, by a braking energy recovery system. To improve the efficiency of the charging process, the vehicle according to the invention is characterized in that:
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- said battery pack comprises a plurality of battery modules,
- the vehicle comprises a connection circuit of said battery modules including a plurality of connection switches, each switchable between a first position and a second position, and
- an electronic control and processing unit configured to control the switching of said connection switches in such a way that the voltage of the battery pack is adapted according to the state of use and in particular in such a way that:
- during a battery module recharge phase, said connection switches are in a first switching configuration, wherein the battery modules are connected in series with each other,
- when the electric vehicle is in motion, said connection switches are in a second switching configuration, wherein the battery modules are connected in parallel with each other or partially in series and partially in parallel, and
- when the electric vehicle is stationary with the electric motors inactive, said connection switches are in a third switching configuration, wherein the battery modules are isolated from each other.
Thanks to the aforesaid characteristics, the battery modules are connected in series with each other during the recharging phase, in order to increase the recharge voltage (for example, 200V or 300V or 400V and more) and, therefore, to keep the power supply current low in order to be able to increase the charging speed by reducing the stress of the battery cells. In the previous instant wherein recharging begins, the system of the switches prepares the entire pack to operate in the manner wherein the modules are connected in series.
In the configuration wherein the modules are disconnected from each other, the maximum voltage of the entire circuit is that of the single module, this configuration is, therefore, characterized by the safety wherein an operator can intervene on the pack avoiding the risks due to high voltage. Similarly, when the vehicle is stationary and not charging, the circuit of the switches autonomously disconnects the modules from each other. While running, the system of the switches can reconnect all the modules in series or reconfigure them in such a way as to supply a multiple voltage of the submodules, for example, in a configuration whereby the two-by-two modules operate in parallel and the two pairs in series.
Further characteristics and advantages of the invention will become apparent from the description that follows with reference to the attached drawings, provided purely by way of non-limiting example, wherein:
In
Each of the modules 1A, 1B, 1C consists of a reticular structure formed by high-strength steel arms 2, welded together, each arm having a hollow structure with a quadrangular cross-section. With reference to the specific example illustrated, the main cell module 1A includes two lower side longitudinal members 2A connected to each other by cross-members 2B. The lower ends of two front side uprights 2C and two central side uprights 2D are welded to the longitudinal members 2A. In the example of
The front frame module 1B has an upper part including four longitudinal beams 2L projecting forwards, the front ends of which are connected by a front cross-member 2M. The lower part of the module 1B includes two additional longitudinal beams 2L, also protruding forwards and ending with flanges for coupling with a crossbar (not visible in the drawing), forming part of the structure of a front bumper 3. The longitudinal beams 2L are configured in such a way as to be able to absorb impact energy, through their controlled deformation, as will be described in more detail below.
References 3 and 4 indicate the structure of the vehicle's front and rear bumpers intended to be connected to the front 1B and rear 1C frame modules. The front bumper, if produced in composite material according to a previous proposal by the same Applicant, has characteristics of particular stiffness and non-linear elasticity such as to improve performance in the event of a frontal and off-axis crash.
Connected to the two lower side longitudinal members 2A is a floor structure F, which will be described in more detail below, which performs both a structural function and container function for the battery pack of the vehicle.
Still with reference to
With reference to
With reference to
Again with reference to
As is evident from the above description, the structure of the pivoting triangles 7, 8 allows a considerable simplification of the manufacturing operations and also a drastic reduction of the costs of the production equipment, given that it is not necessary to prepare elements obtained from molding or casting processes, since it is possible to make each component by simply bending and welding metal sheet elements.
With reference to
Again with reference to
Still with reference to
The structure of the rear door is substantially similar to that of the front door shown in
As is evident from the above description, in the vehicle according to the invention the doors also have a structure configured to allow—on the one hand—a drastic simplification of the manufacturing operations and a reduction in the cost of the production equipment and, however, to achieve—on the other hand—a high degree of safety and protection of passengers against the consequences of side impacts.
Pick-Up ConfigurationThe frame 1 of the pick-up vehicle 24 is visible in
The structure of the front and rear frame modules 1B and 1C is entirely similar to that already described with reference to
With reference again to
Again with reference to
Still with reference to
In the vehicle according to the invention, the battery pack for powering the electric drive motors of the vehicle comprises a plurality of battery modules Bi, four modules B1, B2, B3, B4 are shown in the example illustrated for the sake of simplicity.
In the embodiment illustrated here, the four battery modules B1-B4 are connected in series with each other, so that the voltage across the battery pack, for example, 48V, 120V, 240V, 360V, 420V is the sum of the voltages at the heads of the individual battery modules, for example 24V, 36V, 48V, 60V.
The recharging circuit of the battery modules B1-B4, indicated—in its entirety—with the reference 44, comprises a switching circuit 45 configured to connect one or more groups (panels) of photovoltaic cells PV1, PV2, . . . , PVi selectively to any one of the battery modules B1, B2, B3, B4, in such a way that each battery module is supplied with current at the supply voltage of the single battery module, i.e. for example with 24V, 36V, 48V, 60V current. Each group or panel of photovoltaic cells PV1, PV2, . . . , PVi is connected to the switching circuit 45 by means of a DC/DC converter C1, C2, . . . , Ci, which carries the current from the supply voltage of the respective photovoltaic panel, for example, 9V or 24V, to the supply voltage of the single battery module, for example, 24V, 36V, 48V, 60V. A Battery Management System 46 is also associated with the vehicle battery pack, designed to check the state of charge of the individual battery modules B1, B2, B3, B4, and an electronic control and processing unit E configured and programmed to control the switching circuit 45 according to the state of charge of the individual battery modules, in such a way as to dynamically vary the battery module that is being recharged in order to actively balance the state of charge of the various battery modules.
In the embodiment example of
As is evident from the above description, on the one hand, the recharging of the battery pack may be carried out more efficiently and by making use of simpler and less expensive components, since each DC/DC converter must supply current at a voltage that is the voltage across a single battery module. At the same time, the system according to the invention allows the recharging of the battery pack to be managed dynamically, keeping the state of charge of the various battery modules actively balanced as much as possible.
Again with reference to the diagram of
In the preferred embodiment, the Battery Management System is configured and programmed to inhibit the operation of the regenerative braking energy system when a state of charge of the battery modules of the battery pack is detected beyond a predefined limit. In this case, since there is no need to recharge the battery modules, the generation of generative energy is switched off during deceleration, during a descent or when braking the vehicle. In the latter case, braking is achieved in a conventional way, by actuating disc brakes associated with the wheels of the vehicle.
In this case, the switching circuit 45 comprises a plurality of galvanic isolation circuits S1, S2, S3, S4 each having two input heads I1, I2 and two output heads U1, U2, The two input heads I1, I2 are connected one to all the output poles PA of the DC/DC converters, and the other to all the output poles PB of the DC/DC converters. The two output heads U1, U2 of each galvanic isolation circuit are connected to the poles of a respective battery module B1, B2, B3, B4, As in the case of the embodiment described above, the electronic unit E controls the DC/DC converters and the S1-S4 circuits as a function of the signals received by the Battery Management System 46 relating to the state of charge of the different battery modules, in order to activate the galvanic isolation circuits. The switching system 45 is able to selectively connect one or more of the photovoltaic cell panels with one or more of the battery modules so that the electronic unit E is able to dynamically manage the recharging of the different battery modules according to their state of charge, in order to keep the charge level of the different battery modules actively balanced. The diagram of
In known systems wherein the battery pack is recharged without balancing, the battery modules with the lowest state of charge reach full capacitance before the more charged battery modules.
With the active balancing achievable with the present invention, during the charge cycle, the battery can reach its full capacitance without unnecessary energy losses.
With reference to
Each battery module Bi is charged by the circuit on the basis of the control carried out by the electronic control and processing unit E (
In this way, the power of the photovoltaic panels (PV) may be transferred to the battery modules with a charge transfer efficiency greater than 90%.
During the entire charge cycle, each circuit communicates the state of charge of the respective battery module, so that no battery module becomes overcharged compared to the others.
In particular, it is not necessary to discharge an overcharged battery module, which avoids wasting energy.
Substantially, active balancing consists of injecting charge (current) into the battery module (for example, a single battery cell or a group of battery cells) with the lowest state of charge. This allows obtaining a similar state of charge in all battery modules and, therefore, pursuing an energy balance in all the elements. In doing this, the galvanic isolation in each series guarantees full safety on the side of the panel PV in all operating conditions.
Variable Configuration Battery PackThe electronic unit E checks the status of the different switches S1-S6 to produce different connection conditions of the battery modules in the different operating steps of the vehicle.
Thanks to the aforesaid characteristics, the battery modules are connected in series with each other during the recharging phase, in order to increase the recharge voltage (for example, 200V or 300V or 400V and more) and, therefore, keep the power supply current low in order to be able to increase the charging speed by reducing the stress of the battery cells. In the previous instant wherein recharging begins, the system of the switches prepares the entire pack to operate in the manner wherein the modules are connected in series.
As is evident from the above description, the vehicle according to the invention has a series of innovative contents aimed—on the one hand—at drastically reducing the complexity of the vehicle structure and the costs of production equipment, at improving the degree of safety of the vehicle and the protection of the driver and passengers against the consequences of collisions, as well as—at the same time—identifying new vehicle configurations, such as the configuration of pick-up vehicles and vans, wherein arrangements of photovoltaic cell panels are made in combination with configurations that increase the functionality and ease of use of the vehicle. Furthermore, according to an additional aspect of the invention, improved forms of circuits have been developed for active recharging of the battery modules by means of photovoltaic panels. Other circuit forms allow a dynamic reconfiguration of the battery pack voltage and which—at the same time—increase both the efficiency of the recharging process and the safety level when the vehicle is stationary.
Of course, without prejudice to the principle of the invention, the embodiments and construction details may widely vary with respect to those described and illustrated purely by way of example, without thereby departing from the scope of the invention, as defined in the attached claims.
Claims
1. An electric vehicle, comprising:
- a vehicle frame, including a main cell module, a front anti-crash module rigidly connected to a front portion of the main cell module and a rear frame module rigidly connected to a rear portion of the main cell module,
- wherein each of said main cell module, said front anti-crash module and said rear frame module consists of a reticular structure formed by high-strength steel arms, welded together, each arm of said high-strength steel arms having a hollow structure with a quadrangular cross-section,
- a front axle unit and a rear axle unit, each of said front axle unit and said rear axle unit comprising: a second frame rigidly connected to said front module or said rear frame module,
- an upper pivoting arm and a lower pivoting arm for each wheel of said front axle unit and said rear axle unit, said upper pivoting arm and said lower pivoting arm mounted hinged to the second frame and carrying a respective wheel support in a rotatable way around a steering axis, a wheel hub rotatably supported by said respective wheel support,
- an electric motor unit carried by the second frame and connected by means of transmission members to the wheel hub, and
- a device for activating a steering of each wheel of said front axle unit and said rear axle unit, carried by the second frame of the axle unit, a floor rigidly connected to two lower side longitudinal members of said main cell module and configured to act as a structural element of the vehicle frame and as a container for a battery pack, for the electrical power supply of said electric motor unit,
- said upper pivoting arm and said lower pivoting arm having a main body consisting of elements obtained from high-resistance steel tubes cut by laser cutting and welded together, with an upper main wall and a lower main wall, both triangular in shape, parallel to each other and spaced apart, defining a base side of the triangular configuration at the ends of which two horizontal bushings are welded, coaxial with each other, for an articulated connection to the secondframe, and with an outer tip of the triangle configuration to which a vertical axis bushing is welded for the articulated connection of the wheel support around the steering axis, and
- the wheel support, which is connected to said upper pivoting arm and to said lower pivoting arm, having a main body consisting of tubular members of high-resistance steel welded together,
- a cylindrical ring for the rotatable support of the wheel hub welded to said main body of the wheel support, and
- an upper attachment and a lower attachment welded to said main body of the wheel support, said attachments being made of high-strength steel tubes welded together, and being provided for receiving articulated supports for pivotal connection to the upper and lower pivoting arms around said steering axis.
2. An electric vehicle according to claim 1, wherein the front axle unit and the rear axle unit have independent motor units and include the electric motor unit, the front axle unit and the rear axle unit comprising gearbox assemblies configured to achieve different transmission ratios.
3. An electric vehicle according to claim 1, wherein the floor acting as a container for the battery pack has a structure including a lower container body and an upper container body having peripheral edges rigidly connected to each other,
- wherein each of said lower and upper container bodies is formed by two metal sheet panels parallel to each other and spaced apart, shaped by cutting and bending, so as to present a main bottom wall surrounded by two side walls and two end walls,
- wherein one or both of the two metal sheet panels of each container body has an ordered distribution of imprints which act as spacer elements between the two panels, and
- wherein the space between the two panels of each of said lower and upper container bodies is filled with insulating material.
4. An electric vehicle according to claim 1 wherein said front frame module includes longitudinal beams for absorbing impact energy, each of said beams consisting of an arm of the reticular structure protruding forwards and having a hollow body with a quadrangular cross-section, so as to have four longitudinal edges, and
- said longitudinal beams having a series of openings for controlling an impact deformation, formed on each of said longitudinal edges in spaced apart positions, said openings presenting a decreasing amplitude from a front end of the longitudinal beam towards a rear end, so as to induce a progressive deformation of the beam following a front impact, starting from the front end towards the rear end.
5. An electric vehicle according to claim 1, further comprising at least two front doors, articulated to said main cell module, each of said at least two front doors comprising a door frame-skeleton having opposite faces covered by an inner door structure and by an outer door structure,
- wherein the door frame-skeleton includes a reticular structure formed by high-strength steel arms, welded together, each arm having a hollow structure with quadrangular cross-section,
- wherein said arms constituting the door frame include at least one front upright, and one rear upright, which are rigidly connected to each other by an upper cross-member, by a lower cross member, and a diagonal arm,
- wherein each door includes a window frame including guide elements substantially forming an arch, which has its opposite ends rigidly connected to said upper cross member of the door frame, and
- wherein the inner door structure and the outer door structure are constituted by steel sheet panels rigidly connected on opposite sides to said door frame and including—in one piece—respective window frames, which clamp together the aforesaid window frame connected to the upper cross-member of the door frame.
6. An electric vehicle according to claim 1, wherein: wherein said side panels and said rear panel are movable between a lowered configuration, wherein said panels cover the respective sides of said superstructure, so as to define a closed space, and a raised configuration, wherein the panels are rotated upward around their upper horizontal edge.
- said vehicle frame has a configuration for a pick-up vehicle or van including a superstructure comprising a front roll-bar, a rear roll-bar and two upper side longitudinal members:
- said structure supports:
- an upper panel of photovoltaic cells serving as a roof,
- two side panels of photovoltaic cells covering the two sides of said superstructure, and
- a rear panel of photovoltaic cells covering the rear side of said superstructure, and
7. An electric vehicle according to claim 6, wherein in their raised position—the side panels and/or the rear panel (34) are arranged to slide under the upper panel acting as a roof.
8. An electric vehicle according to claim 6, wherein the vehicle body is provided with auxiliary panels of photovoltaic cells arranged on the sides and on the rear wall of the vehicle, below the aforesaid superstructure.
9. An electric vehicle according to claim 6, wherein each panel of photovoltaic cells, the cells are incorporated in a layered laminar structure, including an outermost layer comprising one or more layers of PET with a UV or ECTFE coating, two layers of a thermoplastic polyolefin material, above and below the cells, to encapsulate the cells, and a thin rear layer of structural glass fiber.
10. An electric vehicle according to claim 6, wherein each panel of photovoltaic cells has an ordered distribution in rows and columns of photovoltaic cells separated by cell-free strips, and at least some of the intersections between the aforesaid cell-free strips are arranged reflecting devices or LED light sources configured to display as an assembly passive colored or reflective or active writings and logos through the LED sources.
11. An electric vehicle according to claim 1, further comprising one or more outer surfaces covered by one or more panels of photovoltaic cells connected to a recharging circuit of the battery pack, which powers the electric motor unit of the vehicle,
- said battery pack comprising a plurality of battery modules connected in series with each other, so that the voltage across the battery pack is the sum of the voltage across the individual battery modules,
- said recharging circuit comprising a switching circuit configured to connect one or more groups or panels of said photovoltaic cells, selectively to any of said battery modules, in such a way that each battery module is supplied with current at the supply voltage of the single battery module, and
- each group or panel of photovoltaic cells connected to said switching circuit by means of a DC/DC converter, which carries the current from the supply voltage of the photovoltaic cell to the supply voltage of the single module battery;
12. A vehicle according to claim 11, wherein said battery pack is associated with a Battery Management System, designed to control the state of charge of the individual battery modules, and an electronic control and processing unit configured and programmed to control said switching circuit according to the state of charge of the individual battery modules, so that the battery pack is actively charged and balanced by the photovoltaic panels.
13. An electric vehicle according to claim 11, wherein each DC/DC converter has a first pole and a second pole at its output and in that said switching circuit comprises a plurality of switches, each designed to connect one of the two poles of a respective battery module with all the first output poles of the DC/DC converters or with all the second output poles of the DC/DC converters.
14. An electric vehicle according to claim 11, wherein:
- each DC/DC converter has a first pole and a second pole at its output,
- said switching circuit comprises a plurality of galvanic isolation circuits each having two input heads and two output heads,
- the two output heads of each galvanic isolation circuit are connected to the two poles of a respective battery module,
- the two input heads of each galvanic isolation circuit are connected one to all the first output poles of said DC/DC converters, and the other to all the second output poles of said DC/DC converters.
15. An electric vehicle according to claim 11, wherein said battery pack is associated with a Battery Management System, designed to control the state of charge of the individual battery modules and an electronic control and processing unit configured and programmed to control the aforesaid galvanic isolation circuits according to the state of charge of the individual battery modules, so that the individual battery modules have a dynamically and actively equalized state of charge.
16. An electric vehicle according to claim 1, wherein: an electronic control and processing unit configured to control the switching of said connection switches in such a way that the voltage of the battery pack is adapted according to the state of use and in particular in such a way that:
- said battery pack comprises a plurality of battery modules,
- the vehicle comprises a connection circuit of said battery modules including a plurality of connection switches, each switchable between a first position and a second position, and
- during a battery module recharge phase, said connection switches are in a first switching configuration, wherein the battery modules are connected in series with each other,
- when the electric vehicle is in motion, said connection switches are in a second switching configuration, wherein the battery modules are connected in parallel with each other, or partially in series and partially in parallel, and
- when the electric vehicle is stationary with the electric motors inactive, said connection switches are in a third switching configuration, wherein the battery modules are isolated from each other
17. An electric vehicle according to claim 16, wherein the operating state of said switching switches is controlled by respective solenoids powered by an independent low voltage electric circuit, so that the activation of said connection switches is independent of the passage of power supply to the battery modules.
18. An electric vehicle according to any, claim 1 further comprising an energy regenerative system configured to generate electric energy for charging the battery pack during a vehicle deceleration and/or braking step, said battery pack associated with a Battery Management System configured to control the state of charge of the battery pack, and an electronic control and processing unit to regulate said energy regenerative system preventing electric current from being powered in the battery if a state of charge beyond a predetermined limit is detected
19. An electric vehicle according to claim wherein the vehicle is provided with a connection connector with a bidirectional charging device, connected to the power supply network and/or to the electrical circuit of a home, and configured to allow both a recharging of the vehicle battery pack by the power supply network and a power supply of the electrical circuit of the home from the vehicle battery pack.
Type: Application
Filed: Apr 22, 2022
Publication Date: Jun 6, 2024
Applicant: INTERACTIVE FULLY ELECTRICAL VEHICLES S.R.L. (La Loggia, Torino)
Inventors: Pietro PERLO (La Loggia, Torino), Davide PENSERINI (La Loggia, Torino), Marco BIASIOTTO (La Loggia, Torino), Marco GROSSO (La Loggia, Torino), Sergio POZZATO (La Loggia, Torino), Marco DALMASSO (La Loggia, Torino), Simone SIVIERI (La Loggia, Torino), Riccardo INTROZZI (Torino), Antonio MANCUSO (La Loggia, Torino), Alessandro USIGNOLO (La Loggia, Torino), Sandro DEPASQUALE (La Loggia, Torino)
Application Number: 18/556,586